by Keyword: Bioactuator
Molina, Brenda G, Sanz-Farnos, Julia, Sanchez, Samuel, Aleman, Carlos, (2024). Ultrasensitive flexible pressure sensor for soft contraction detection Sensors And Actuators B-Chemical 416, 136005
We report the fabrication and characterization of a highly sensitive pressure sensor that has been successfully tested using 3D-bioprinted skeletal muscle tissue. The proposed pressure sensor consists of two assembled 3D printed specimens, which were obtained using 60/40 v/v poly(3,4-ethylenedioxythiophene):polystyrene sulfonic acid (PEDOT:PSS) / poly(ethylene glycol) diacrylate (PEGDA) mixture, placed between two indium tin oxidecoated polyethylene terephthalate (PET-ITO) films. The printed specimens were shaped with a serrated structure, improving the sensitivity of the contact when pressed against PET-ITO film. Initially, the performance of the fabricated pressure sensor was tested using light cylindrical weights, which corresponded to pressures ranging from 0.99 to 14.71 kPa, and as prove of concept, carefully pressing with the finger (from 2.91 to 6.81 kPa). As the sensitivity and fast response of sensor were compatible with detection of soft muscle contractions, 3D-bioprinted skeletal muscle bioactuators were manufactured using myoblast cells. The contractions of the bioactuators, which were induced using electrical stimulation, exerted a pressure of 1.5 kPa only that was clearly and precisely detected by the sensor. Overall, the potential application of proposed pressure sensor for wearable and biomedical devices is evidenced by demonstrating its fast response time (< 50 ms) and sensitivity.
JTD Keywords: 4-ethylenedioxythiophene), Bioactuator, Healt, Hydrogels, Poly(3, Poly(ethylene glycol) diacrylate, Raman-spectroscopy, Soft electronics, Wearable electronic
Molina, Brenda G, Fuentes, Judith, Aleman, Carlos, Sanchez, Samuel, (2024). Merging BioActuation and BioCapacitive properties: A 3D bioprinted devices to self-stimulate using self-stored energy Biosensors & Bioelectronics 251, 116117
Biofabrication of three-dimensional (3D) cultures through the 3D Bioprinting technique opens new perspectives and applications of cell-laden hydrogels. However, to continue with the progress, new BioInks with specific properties must be carefully designed. In this study, we report the synthesis and 3D Bioprinting of an electroconductive BioInk made of gelatin/fibrinogen hydrogel, C2C12 mouse myoblast and 5% w/w of conductive poly (3,4-ethylenedioxythiophene) nanoparticles (PEDOT NPs). The influence of PEDOT NPs, incorporated in the cellladen BioInk, not only showed a positive effect in cells viability, differentiation and myotube functionalities, also allowed the printed constructs to behaved as BioCapacitors. Such devices were able to electrochemically store a significant amount of energy (0.5 mF/cm2), enough to self-stimulate as BioActuator, with typical contractions ranging from 27 to 38 mu N, during nearly 50 min. The biofabrication of 3D constructs with the proposed electroconductive BioInk could lead to new devices for tissue engineering, biohybrid robotics or bioelectronics.
JTD Keywords: 3d bioprinting, Animal, Animals, Bioactuator, Bioactuators, Biocapacitor, Biofabrication, Bioprinting, Biosensing techniques, C2c12 myoblasts, Cells, Chemistry, Electric conductivity, Electroconductive, Electroconductive bioink, Ethylenedioxythiophenes, Genetic procedures, Hydrogel, Hydrogels, Mice, Mouse, Pedot nps, Pedot nps,3d bioprinting,electroconductive bioink,bioactuator,biocapacito, Poly (3,4-ethylenedioxythiophene) nanoparticle, Printing, three-dimensional, Procedures, Skeletal-muscle,cytotoxicity,polymer, Synthesis (chemical), Three dimensional printing, Tissue engineering, Tissue scaffolds